[0001] The present invention relates to a lens barrel and an image pickup apparatus.
[0002] As a lens barrel of an image pickup apparatus such as a digital still camera, there
is a lens barrel, in which a zoom lens for a zoom operation is provided so as to be
movable in an optical axis direction.
[0003] Such a lens barrel includes a lens mount for holding a zoom lens in a barrel, and
a guide shaft extending straight in parallel to an optical axis of the zoom lens in
the barrel to be connected to the lens mount so as to guide the lens mount along the
optical axis. Both ends of the guide shaft in its extending direction are fixed to
a part of the barrel within the barrel. An object image is formed through an optical
system including the zoom lens on an image-forming surface of an image pickup element
provided in the lens barrel.
[0004] The optical axis of the zoom lens is sometimes tilted with respect to an optical
axis of another optical system provided in the lens barrel due to a variation in size
of the lens mount or the barrel or a variation in mount accuracy of the zoom lens
to the lens mount.
[0005] Such a tilt of the optical axis causes defocusing that partially occurs in the object
image formed on the image-forming surface of the image pickup element, so-called partial
defocusing.
[0006] In order to eliminate such partial defocusing, an adjustment mechanism for adjusting
the tilt of the optical axis of the lens has been proposed. For example, an adjustment
mechanism for abutting a lens mount against a barrel member by a flat spring while
adjusting the tilt between the lens mount and the barrel member with a plurality of
adjusting screws has been proposed (see Japanese Patent Application Publication No.
2003-43328).
[0007] According to the above-described conventional technique, however, the adjustment
mechanism itself is complicated and its adjustment operation is troublesome. Therefore,
such a technique is disadvantageous in reduction in size of the lens barrel or reduction
in cost.
[0008] The present invention is achieved in view of the above-described conditions and it
is desirable to provide a lens barrel and an image pickup apparatus, which are capable
of reducing the size of the device, reducing the number of components and reducing
cost.
[0009] According to one aspect of the present invention, there is provided a lens barrel
including: a lens mount for holding a lens within a barrel; a guide shaft extending
straight to be parallel to an optical axis of the lens within the barrel to be connected
to the lens mount for guiding the lens mount along the optical axis; and support means
for supporting both ends of the guide shaft in its extending direction within the
barrel, wherein the support means for supporting at least one of the two ends of the
guide shaft includes a hole provided in the barrel and a bearing member attached from
the exterior of the barrel into the hole removably therefrom and rotatably about a
center axis of the hole; the bearing member includes a shaft inserted into the hole
and a bearing hole provided in the shaft, into which one ends of the guide shaft is
inserted; and a center axis of the bearing hole is eccentric from a center axis of
the shaft.
[0010] According to another aspect of the present invention, there is also provided an image
pickup apparatus including: an image pickup element provided in a barrel; and an optical
system for projecting an object image on the image pickup element in the barrel, wherein
the lens barrel includes: a lens mount for holding a lens composing the optical system
in the barrel; a guide shaft extending straight in parallel to an optical axis of
the lens within the barrel to be connected to the lens mount for guiding the lens
mount along the optical axis; and support means for supporting both ends of the guide
shaft in its extending direction within the barrel, wherein the support means for
supporting at least one of the two ends of the guide shaft includes a hole provided
in the barrel and a bearing member attached from the exterior of the barrel into the
hole removably therefrom and rotatably about a center axis of the hole; the bearing
member includes a shaft inserted into the hole and a bearing hole provided in the
shaft, into which one ends of the guide shaft is inserted; and a center axis of the
bearing hole is eccentric from a center axis of the shaft.
[0011] According to an embodiment of the present invention, the bearing member that supports
one end of the guide shaft includes the shaft inserted from the exterior of the barrel
into the hole so as to be removable therefrom and the bearing hole having the center
axis eccentric from the center axis of the shaft.
[0012] Therefore, for example, by preparing a plurality of types of the bearing members,
each having a different amount of eccentricity between the center axis of the bearing
hole and the center axis of the shaft, easy adjustment of the optical axis of the
lens can be ensured.
[0013] Moreover, a complicated mechanism as a conventional one can be simplified, and a
large space is not needed. Accordingly, such a structure is advantageous in reduction
of the number of components, reduction of cost, and reduction of size of the lens
barrel.
[0014] By providing the shaft inserted from the exterior of the barrel into the hole so
as to be removable therefrom and the bearing hole having the center axis eccentric
from the center axis of the shaft for the bearing member for supporting one end of
the guide shaft, the above-mentioned is realized.
[0015] Embodiments of the invention will now be described, by way of example only, with
reference to the accompanying drawings in which:
Fig. 1 is a perspective view showing a bearing member viewed from above;
Fig. 2 is a perspective view showing the bearing member viewed from below;
Fig. 3(A) is a plan view showing the bearing member, Fig. 3(B) is a sectional view
cut along a line B-B in Fig. 3(A), and Fig. 3(C) is a view on arrow C in Fig. 3(B);
Figs. 4(A) through (D) are explanatory views of the bearing member, where the upper
views are sectional views and the lower views are bottom views;
Fig. 5 is a perspective view showing a partially cutaway lens barrel;
Fig. 6 is a perspective view showing a hole;
Fig. 7 is a perspective view showing a state where the bearing member is housed in
the hole;
Fig. 8 is a sectional view showing a state where the bearing member is housed in the
hole;
Fig. 9 is an explanatory view showing an operation of adjusting a tilt of a main guide
shaft;
Fig. 10 is another explanatory view showing the operation of adjusting the tilt of
the main guide shaft;
Fig. 11 is a perspective view of an image pickup apparatus viewed from the front side;
Fig. 12 is a front view of the image pickup apparatus;
Fig. 13 is a back view of the image pickup apparatus;
Fig. 14 is a plan view of the image pickup apparatus;
Fig. 15 is a block diagram showing a control system of the image pickup apparatus;
Fig. 16 is a perspective view showing a lens barrel viewed from the front side;
Fig. 17 is a perspective view showing the lens barrel viewed from the rear bottom
side;
Fig. 18 is a front view of the lens barrel;
Fig. 19 is a back view of the lens barrel;
Fig. 20A is a view on arrow A in Fig. 18, and Fig. 20B is a view on arrow B in Fig.
18;
Fig. 21A is a view on arrow C in Fig. 18, and Fig. 21B is a view on arrow D in Fig.
18;
Fig. 22 is a sectional view cut along a line A-A in Fig. 16;
Fig. 23 is a sectional view cut along a line B-B in Fig. 16;
Fig. 24 is an exploded perspective view showing a partial structure of the lens barrel;
Fig. 25 is an exploded perspective view showing the remaining structure of the lens
barrel; and
Fig. 26 is a perspective view showing a movable zoom lens group and a movable focus
lens group.
[0016] Next, an embodiment of the present invention will be described with reference to
the accompanying drawings.
[0017] In this embodiment, the case where a lens barrel according to the present invention
is incorporated into an image pickup apparatus will be described.
[0018] Fig. 11 is a perspective view showing an image pickup apparatus viewed from the front
side, Fig. 12 is a front view of the image pickup apparatus, Fig. 13 is a back view
of the image pickup apparatus, Fig. 14 is a plan view of the image pickup apparatus,
and Fig. 15 is a block diagram showing a control system of the image pickup apparatus.
[0019] Throughout this specification, a horizontal direction (the right and the left) corresponds
to that when the image pickup apparatus is viewed from the front side. The object
side is referred to as the front side, whereas the image pickup apparatus side is
referred to as the back side.
[0020] As shown in Figs. 11 through 14, an image pickup apparatus 100 is a digital still
camera and includes a case 102 constituting an outer casing.
[0021] Into the right part of the case 102, a lens barrel 10 according to the present invention
is incorporated as indicated with a chain double-dashed line.
[0022] The lens barrel 10 includes, as shown in Fig. 15, a barrel 12, an image pickup element
150 housed within the barrel 12, an optical system 104 for projecting an object image
housed within the barrel 12 on the image pickup element 150, and the like.
[0023] The optical system 104 includes an objective lens 14. The objective lens 14 is provided
so as to be oriented forward through a lens window 103 provided on the front face
of the case 102.
[0024] In the center of the upper part of the front face of the case 102, a flash 106 for
emitting photographing light, a self-timer lamp 108 and the like are provided.
[0025] On the front face of the case 102, a barrier 110 is provided so as to be vertically
slidable. The barrier 110 slides to a lower limit position at which the lens window
103, the flash 106 and the self-timer lamp 108 are exposed forward and to an upper
limit position at which the lens window 103, the flash 106 and the self-timer lamp
108 are covered.
[0026] On an upper end face of the case 102, a shutter button 112 for photographing images
and a zoom operation switch 114 for adjusting the zoom of the photographing optical
system are provided.
[0027] On the upper part of a left side face of the case 102, a power switch (not shown)
for turning power ON/OFF is provided.
[0028] On the rear face of the case 102, a display 120 for displaying a photographed image
is provided. On the side of the display 120, a mode change switch 122 for switching
a mode between a still image shooting mode, a motion image shooting mode and a reproducing
mode, a menu switch 124 for displaying a menu on the display 120 and a control switch
126 for an operation such as selection on the menu displayed on the display 120 are
provided.
[0029] Below the display 120 on the rear face of the case 102, a display switch 128 for
turning the display 120 ON/OFF, an image size change switch 130 and the like are provided.
[0030] As shown in Fig. 15, the image pickup element 150 consists of a CCD or a CMOS sensor
for taking an object image formed through the optical system 104.
[0031] The image taken by the image pickup element 150 is output to an image processing
unit 152 as an imaging signal. The image processing unit 152 processes the imaging
signal to generate image data of a still image or a motion image, which is then recorded
on a memory card (recording medium) 154. The image data is displayed on the display
120 by a display processing unit 156.
[0032] Furthermore, the image pickup apparatus 100 includes a control unit 158 including
a CPU for controlling the image processing unit 152, the display processing unit 156
and the like in accordance with an operation of the operation switches such as the
shutter button 112, the zoom operation switch 114, the power switch, the mode change
switch 122, the menu switch 124, the control switch 126, the display switch 128, the
image size change switch 130 and the like.
[0033] Fig. 16 is a perspective view showing the lens barrel 10 viewed from the front side,
and Fig. 17 is a perspective view showing the lens barrel 10 viewed from the lower
bottom side.
[0034] Fig. 18 is a front view of the lens barrel 10, Fig. 19 is a back view of the lens
barrel 10, Fig. 20A a view on arrow A in Fig. 18, Fig. 20B is a view on arrow B in
Fig. 18, Fig. 21A is a view on arrow C in Fig. 18, and Fig. 21B is a view on arrow
D in Fig. 18.
[0035] Fig. 22 is a sectional view along a line A-A in Fig. 16, and Fig. 23 is a sectional
view along a line B-B in Fig. 16.
[0036] Fig. 24 is an exploded perspective view showing a part of a structure of the lens
barrel 10, and Fig. 25 is an exploded perspective view showing the remaining structure
of the lens barrel 10.
[0037] Fig. 26 is a perspective view showing a movable zoom lens group 18 and a movable
focus lens group 20.
[0038] As shown in Figs. 16 to 25, in addition to the objective lens 14 described above,
the optical system 104 includes: a reflecting member 16, a movable zoom lens group
18, a movable focus lens group 20, a first fixed lens group 22, a second fixed lens
group 24, a third fixed lens group 26, a guide mechanism 28 for the movable zoom lens
group 18, and a guide mechanism 30 for the movable focus lens group 20.
[0039] Furthermore, the optical system 104 is also provided with driving means 32 for moving
the movable zoom lens group 28 and driving means 34 for moving the movable focus lens
group 20.
[0040] As shown in Figs. 16 and 17, a barrel presents a flat rectangular plate-like shape
having a thickness, a width larger than the thickness and a length larger than the
width. The image pickup element 150 and the optical system 104 are arranged in a longitudinal
direction of the barrel 12 in a part of the barrel 12 slightly closer to one side
in a width direction from the center in the width direction.
[0041] The barrel 12 is composed of a first barrel divided body part 1202 and a second barrel
divided body part 1204 obtained by the division in the longitudinal direction and
a third barrel divided body part 1206 interposed between the first and the second
barrel divided bodies 1202 and 1204. The first barrel divided body part 1202 is located
as a half of the barrel 12 in the longitudinal direction, whereas the second barrel
divided body part 1204 is located as the other half of the barrel 12 in the longitudinal
direction. The third barrel divided body part 1206 is interposed between the first
barrel divided body part 1202 and the second barrel divided body part 1204.
[0042] In this embodiment, as shown in Figs. 11 and 12, the lens barrel 10 (the barrel 12)
is arranged so that its longitudinal direction is identical with the vertical direction.
Therefore, the first barrel divided body part 1202 is situated in the upper part of
the barrel 12, the second barrel divided body part 1204 is situated in the lower part
of the barrel 12, and the third barrel divided body part 1208 is situated in the middle
of the barrel 12 in the vertical direction. One of the surfaces of the barrel 12 in
the thickness direction, which is parallel to the front face of the case 102 of the
image pickup apparatus 100, serves as a front face of the barrel 12, whereas the other
surface of the barrel 12, which is parallel to the rear face of the case 102, serves
as a rear face of the barrel 12. One of the faces of the barrel 12 serves as a left
side face, whereas the other face serves as a left side face.
[0043] Thus, the barrel 12 is provided in the case 102 so that its width direction, length
direction and thickness direction are identical with the horizontal direction, the
vertical direction, the anteroposterior direction of the case 102.
[0044] In this embodiment, each of the first to third barrel divided body parts 1202, 1204
and 1206 is formed of a synthetic resin material.
[0045] As shown in Figs. 22 through 24, the first barrel divided body part 1202 is formed
in a flat rectangular parallelepiped shape with a front wall, a rear wall, a left
wall and a right wall. A component housing space 1202A having a rectangular sectional
shape and a lower open end is provided in the first barrel divided body part 1202.
The objective lens 14 is attached onto the upper part of the front face of the first
barrel divided body part 1202 while a lens holder 1402 is positioned on the front
face side of the objective lens 14 and a light-shielding frame 1404 is positioned
on the rear face side.
[0046] The reflecting member 16 reflects an image captured by the objective lens 14 downward
(toward the image pickup element 150). In this embodiment, a prism is used as the
reflecting member 16. The reflecting member 16 is provided within the component housing
space 1202A so as to face the rear side of the objective lens 14.
[0047] In this embodiment, an optical path of the optical system 104 for projecting the
object image on the image pickup element 150 is composed of a first optical path part
extending backward from the objective lens 14 to the reflecting surface of the reflecting
member 16 and a second optical path part extending downward from the reflecting surface
of the reflecting member 16 to the image pickup element 150. In Fig. 22, the reference
numeral 01 denotes an optical axis of the first optical path part, whereas the reference
numeral 02 denotes an optical axis of the second optical path part.
[0048] The first fixed lens group 22 and the movable zoom lens group 18 are provided in
the component housing space 1202A below the reflecting member 16.
[0049] As shown in Fig. 24, the fist fixed lens group 22 includes a first fixed lens 2202
fitter into an attachment part of the first barrel divided body part 1202 and a holding
member (also serving as a light-shielding frame) 2204 for fixing the first fixed lens
2202 to the attachment part.
[0050] As shown in Figs. 22 through 24, the movable zoom lens group 18 includes a first
zoom lens 1802 and second and third zoom lenses 1804 and 1805 bonded to each other.
[0051] The first to third zoom lenses 1802, 1804 and 1805 are supported by a zoom lens frame
1806.
[0052] The zoom lens frame 1806 is guided along the main guide shaft 28 and a sub-guide
shaft 40 by the driving means 32 to reciprocate in their optical axis direction to
achieve a zoom operation.
[0053] As shown in Fig. 26, the zoom lens frame 1806 includes a holding section 1801 situated
around the first to third zoom lenses 1802, 1804 and 1805 to hold the first to third
zoom lenses 1802, 1804 and 1805 and an extending section 1812 extending from the holding
section 1801 in the width direction of the component housing space 1202A.
[0054] The extending section 1812 is provided with flanges 1816 opposed to each other in
the longitudinal direction of the barrel 12, as shown in Figs. 5 and 24. A hole is
provided in each of the flanges 1816 on the same axis. Shafts 3602 are inserted rotatably
into the holes, respectively, so that an internal thread member 36 is connected between
the flanges 1816 immovably in the longitudinal direction of the barrel 12 and oscillatably
about the shaft 3602 as a supporting point. The internal thread member 36 has a pair
of arms biased in a closing direction by a spring 3601. An internal thread 3604 is
provided on each of the surfaces of the arms, which face each other.
[0055] As shown in Fig. 26, a rod insertion hole 1814 is provided in the extending section
1812.
[0056] The main guide shaft 38 made of a metal, which extends in the longitudinal direction
of the first barrel divided body part 1202, is slidably inserted into the rod insertion
hole 1814. Both ends of the main guide shaft 38 in the longitudinal direction are
supported by a wall constituting the upper face of the first barrel divided body part
1202 and a wall of the third barrel divided body part 1206. The main guide shaft 38
extends straight in parallel to the optical axes of the first to third zoom lenses
1802, 1804 and 1805. In this embodiment, the main guide shaft 28 extends in the longitudinal
direction of the first barrel divided body part 1202. Therefore, the main guide shaft
38 guides the movable zoom lens group 18 in the optical axis direction of the movable
zoom lens group 18.
[0057] Moreover, as shown in Fig. 26, an engagement groove 1818 is formed in a part of the
holding section 1810 on the side opposed to the extending part 1812, at the position
corresponding to the corner of the component housing space 1202A.
[0058] The sub-guide shaft 40 (shown in Fig. 24) extending in the longitudinal direction
of the first barrel divided body part 1202 is slidably inserted into the engagement
groove 1818. Therefore, the sub-guide shaft 40 prevents the zoom lens 18 from rotating
about the main guide shaft 38. The sub-guide shaft 40 extends straight in parallel
to the optical axes of the first to third zoom lenses 1802, 1804 and 1805. The sub-guide
shaft 40 extends in the longitudinal direction of the first barrel divided body part
1202 in this embodiment.
[0059] The guide mechanism 28 for the movable zoom lens group 18 is composed of the main
guide shaft 38 and the sub-guide shaft 40.
[0060] As shown in Figs. 24 and 26, the driving means 32 for moving the movable zoom lens
group 18 includes a holder 3202 extending in the longitudinal direction of the barrel
12, a motor 3204 provided on the holder 3202, and an external thread member 3206 extending
along the holder 3202 and rotatably driven by the motor 3204.
[0061] The holder 3202 is attached to a notched part on the right side face of the first
barrel divided body part 1202. With this arrangement, the external thread member 3206
is positioned in the component housing space 1202A, whereas the motor 3204 is positioned
on the upper face of the first barrel divided body part 1202.
[0062] The external thread member 3206 is threadably mounted on the internal thread 3604
of the internal thread member 36. As a result, the normal and reverse rotation of
the motor 3204 causes the movable zoom lens group 18 to be guided by the main guide
shaft 38 and the sub-guide shaft 40 to reciprocate the movable zoom lens group 17
along the optical axis directions of the main guide shaft 38 and the sub-guide shaft
40, thereby achieving the zoom operation.
[0063] In this embodiment, the movable zoom lens group 18, the main guide shaft 38 and the
external thread member 3206 are arranged in the first barrel divided body part 1202
in the width direction of the first barrel divided body part 1202. The sub-guide shaft
40 is provided at the zoom lens frame 1806 positioned so as to be opposite to the
main guide shaft 38 and the external thread member 3206.
[0064] As shown in Figs. 22, 23 and 24, the third barrel divided body part 1206 includes
an internal part 1206A oriented toward the interior of the component housing space
1202A and an external part 1206B oriented toward the exterior of the component housing
space 1202A.
[0065] As shown in Fig. 24, the second fixed lens group 24 is attached to the internal part
1206A while the optical axis of the second fixed lens group 24 is being made identical
with that of the movable zoom lens group 18. On the rear face of the second fixed
lens 24, an iris (diaphragm) 42 is provided.
[0066] The iris 42 includes two diaphragm blades 4202 arranged so as to interpose the optical
axis of the optical system 104 in the width direction and a guiding member 4204 for
movably guiding each of the diaphragm blades 4202 in the width direction.
[0067] The driving means 44 attached to the external part 1206B of the third barrel divided
body part 1206 moves the two diaphragm blades 4202 so as to bring them closer to each
other or to separate them from each other to open or close the two diaphragm blades
4202. In this manner, the iris 42 adjusts a light quantity of a light beam traveling
along the optical axis.
[0068] As shown in Fig. 25, the second barrel divided body part 1204 is formed in a rectangular
parallelepiped shape by a front wall 1205A, a rear wall 1205B, a left wall 1205C and
a right wall 1205D. In the second barrel divided body part 1204, a component housing
space 1204A having a rectangular cross section and an upper and a lower open ends.
[0069] An image pickup element attachment plate 46 is attached to the lower part of the
second barrel divided body part 1204. The attachment of the image pickup element attachment
plate 46 closes the lower end of the component housing space 1204A. Therefore, in
this embodiment, the second barrel divided body part 1204 is constituted to include
the image pickup element attachment plate 46.
[0070] The movable focus lens group 20 and the third fixed lens group 26 are provided in
the component housing space 1204A.
[0071] As shown in Fig. 25, the movable focus lens group 20 is composed of a first focus
lens 2002 and a second focus lens 2004 bonded to each other.
[0072] The first and the second focus lenses 2002 and 2004 are supported by the focus lens
frame 2006.
[0073] The focus lens frame 2006 is guided along the main guide shaft 50 and the sub-guide
shaft 52 by the driving means 34 to reciprocate in their optical axis direction, thereby
achieving a focusing operation.
[0074] As shown in Fig. 26, the focus lens frame 2006 is located around the first and the
second focus lenses 2002 and 2004. The focus lens frame 2006 has a holding section
2010 for holding the first and the second focus lenses 2002 and 2004 and an extending
section 2012 extending from the holding section 2010 in the width direction of the
component housing space 1204A.
[0075] The extending section 2012 is provided with flanges 2016 opposed to each other in
the longitudinal direction of the barrel 12, as shown in Fig. 25. A hole is provided
in each of the flanges 2016 on the same axis. Shafts 4802 are inserted rotatably into
the holes, respectively, so that an internal thread member 48 is connected between
the flanges 2016 immovably in the longitudinal direction of the barrel 12 and oscillatably
about the shaft 4802 as a supporting point. The internal thread member 48 has a pair
of arms biased in a closing direction by a spring 4801. An internal thread 4804 is
provided on each of the surfaces of the arms, which face each other.
[0076] As shown in Fig. 25, a rod insertion hole 2014 is provided in the extending section
2012.
[0077] As shown in Figs. 25 and 26, a main guide shaft 50 made of a metal is slidably inserted
into the rod insertion hole 2014. Both ends of the main guide shaft 50 in the longitudinal
direction are supported by the wall of the third barrel divided body part 1206 and
a wall provided below the second barrel divided body part 1204. The main guide shaft
50 extends straight in parallel to the optical axes of the first and second focus
lenses 2002 and 2004. In this embodiment, the main guide shaft 50 extends in the longitudinal
direction of the second barrel divided body part 1204. Therefore, the main guide shaft
50 guides the movable focus lens group 20 in the optical axis direction of the movable
focus lens group 28.
[0078] Moreover, as shown in Fig. 26, an engagement groove 2018 is formed in a part of the
holding section 2010 on the side opposed to the extending part 2012.
[0079] A sub-guide shaft 52 (shown in Fig. 25) is slidably inserted into the engagement
groove 2018. Therefore, the sub-guide shaft 52 prevents the focus lens 20 from rotating
about the main guide shaft 50. The sub-guide shaft 52 is integrally formed with the
second barrel divided body part 1204 and therefore is made of a synthetic resin. The
sub-guide shaft 52 extends straight in parallel to the optical axes of the first and
second focus lenses 2002 and 2004. The sub-guide shaft 52 extends in the longitudinal
direction of the second guide tube divided body part 1204 in this embodiment.
[0080] The guide mechanism 30 for the movable focus lens group 20 is composed of the main
guide shaft 50 and the sub-guide shaft 52.
[0081] As shown in Figs. 25 and 26, the driving means 34 for moving the movable focus lens
group 20 includes a holder 3402 extending in the longitudinal direction of the barrel
12, a motor 2404 provided below the holder 3402, and an external thread member 3406
extending along the holder 2402 to be rotary driven by the motor 2404.
[0082] The holder 3402 is attached to a notched part on the right side face of the second
barrel divided body part 1204. With this arrangement, the external thread member 3406
is positioned within the component housing space 1204A, whereas the motor 3404 is
positioned in the lower part of the second barrel divided body part 1204.
[0083] The external thread member 3406 is threadably mounted on an internal thread 4804
of an internal thread member 48. As a result, the normal and reverse rotation of the
motor 3404 causes the movable focus lens group 20 to be guided by the main guide shaft
50 and the sub-guide shaft 52 to reciprocate the movable focus lens group 120 along
the optical axis directions of the main guide shaft 50 and the sub-guide shaft 52,
thereby achieving the focusing operation.
[0084] In this embodiment, the movable focus lens group 20, the main guide shaft 50 and
the external thread member 3404 are arranged in the second barrel divided body part
1204 in the width direction of the second barrel divided body part 1204. The sub-guide
shaft 52 is provided at the focus lens frame 2006 positioned to be opposite to the
main guide shaft 50 and the external thread member 3406.
[0085] As shown in Fig. 25, the image pickup element attachment plate 46 is attached to
the lower part of the second barrel divided body part 1204 by screws 206 so as to
close the lower end of the component housing space 1204A.
[0086] The image pickup element 150 is provided on the inner surface of the image pickup
element attachment plate 46 which faces the component housing space 1204A.
[0087] In this embodiment, a rectangular window 4602 is provided through the image pickup
element attachment plate 46. The image pickup element 150 is provided after being
inserted into the window 2602. A seal glass 4604, a seal rubber 4606 and a low-pass
filter 4608 are provided on the inner surface of the image pickup element attachment
plate 46 so as to be secured by a keep plate 4610.
[0088] As shown in Fig. 22, concavo-convex portions 1204C are provided on the front face
and the rear face of the second barrel divided body part 1204, which face the component
housing space 1204A, between the upper end of the second barrel divided body part
1204 and the third fixed lens group 26.
[0089] Concavo-convex portion 1204D are provided on the front face and the rear face of
the second barrel divided body part 1204, which face the component housing space 1204A,
between the third fixed lens group 26 and the image pickup element 150.
[0090] The concavo-convex portions 1204C and 1204D are provided for the following reason.
Among light beams traveling through the objective lens 14, the reflecting member 16,
the first fixed lens group 22, the movable zoom lens group 18, the second fixed lens
24 and the movable focus lens 20, a light beam reaching the front face and the rear
face of the second barrel divided body part 1204, which face the component housing
space 1204A, is reflected by the rear face to generate reflected light referred to
as so-called flare or ghost. The concave-convex portions 1204C and 1204D are provided
to prevent the reflected light from reaching a light-receiving face of the image pickup
element 150 to adversely affect the imaging signal of the image pickup element 150.
[0091] A distance between concavity and convexity in the concavo-convex portions 1204D provided
closer to the image pickup element 150 is formed larger than that between concavity
and convexity in the concavo-convex portions 1204C provided farther from the image
pickup element 150. This is because an angle of the light striking against the concavo-convex
portions 1204D is smaller than that of the light striking against the concavo-convex
portions 1204C. The change of the distance between the concavity and the convexity
in the concavo-convex portions 1204C and 1204D in this manner provides an advantage
in that removability from a die is improved for molding of the second barrel divided
body part 1204.
[0092] As shown in Fig. 22, the third fixed lens group 26 is provided in the component housing
space 1204A above the image pickup element 150 and below the movable focus lens group
20.
[0093] As shown in Fig. 25, the first barrel divided body part 1202, the second barrel divided
body part 1204 and the third barrel divided body part 1206 are attached to each other
by a screw 202 in the vicinity of the driving means 44 and by a screw 204 in the vicinity
of the driving means 34.
[0094] Next, an adjustment mechanism for adjusting the optical axis of the movable zoom
lens group 18 to the optical axis 02 of the second optical path part from the reflecting
surface of the reflecting member 16 to the image pickup element 150 will be described.
[0095] Fig. 1 is a perspective view showing a bearing member viewed from above, and Fig.
2 is a perspective view showing a bearing member viewed from below.
[0096] Fig. 3(A) is a plan view showing the bearing member, Fig. 3(B) is a sectional view
cut along a line B-B in Fig. 3(A), and Fig. 3(C) is a view on arrow C in Fig. 3(B);
[0097] Figs. 4(A) through (D) are explanatory views of the bearing member, where the upper
views are sectional views and the lower views are bottom views.
[0098] Fig. 5 is a perspective view showing a partially cutaway lens barrel.
[0099] Fig. 6 is a perspective view showing a hole, Fig. 7 is a perspective view showing
a state where the bearing member is housed within the hole, and Fig. 8 is a sectional
view showing a state where the bearing member is housed within the hole.
[0100] Figs. 9 and 10 are explanatory views showing an adjusting operation of the tilt of
the main guide shaft 38.
[0101] As described above, the movable zoom lens group 18 is retained by the zoom lens frame
1806. The zoom lens frame 1806 is guided so as to be movable straight along the main
guide shaft 38 while being prevented from rotating about the main guide shaft 38 by
the sub-guide shaft 40.
[0102] Both ends of the main guide shaft 38 in the longitudinal direction are supported
by a wall constituting the upper face of the first barrel divided body part 1202 and
a wall of the third barrel divided body part 1206.
[0103] On the other hand, the zoom lens frame 1806 has a processing error within an allowable
range. The assembly of the zoom lens frame 1806 and the movable zoom lens group 18
also has an assembly error within an allowable range.
[0104] Therefore, the optical axis of the movable zoom lens group 18 is sometimes tilted
with respect to the optical axis 02 of the second optical path part to such a degree
that the tilt exceeds the allowable value.
[0105] Moreover, the first barrel divided body part 1202 and the third barrel divided body
part 1206 also have a processing error within an allowance range. The lens barrel
10 has an assembly error within an allowable range.
[0106] Therefore, in some cases, the main guide shaft 38 is tilted with respect to the optical
axis 02 of the second optical path part to tilt the optical axis of the movable zoom
lens group 18 with respect to the optical axis 02 of the second optical path part
to such a degree that the tilt exceeds the allowable value.
[0107] If the optical axis of the movable zoom lens group 18 is tilted with respect to the
optical axis 02 of the second optical axis part to exceed the allowable value, defocusing
partially occurring in an object image formed on the image-forming surface of the
image pickup element 150, that is, partial defocusing is caused.
[0108] Therefore, an adjustment operation for adjusting the optical axis of the movable
zoom lens group 18 to the optical axis 02 of the second optical path part is required.
[0109] In this embodiment, the tilt of the main guide shaft 38 described above is adjusted
at one end (an upper end) of the main guide shaft 38 in the longitudinal direction
to adjust the optical axis of the movable zoom lens group 18 to the optical axis 02
of the second optical path part.
[0110] Specifically, as shown in Fig. 23, the upper end of the main guide shaft 38 is supported
by a bearing member 54 attached to the wall of the first barrel divided body part
1202.
[0111] As shown in Figs. 1 through 3, the bearing member 54 includes: a shaft 5402 inserted
from the exterior of the first barrel divided body part 1202 into a hole 1250 (Figs.
6 through 8; see Fig. 23) in the wall of the first barrel divided body part 1202 so
as to be removable therefrom; a bearing hole 5404 provided in the shaft 5402, into
which the upper end of the main guide shaft 38 is inserted; a collar 5406 having a
larger profile than a cross section of the hole 1250 and being abutted against an
outer face of the wall of the first barrel divided body part 1202; a polygonal part
5408 having a polygonal cross section, which is provided in a projecting manner on
the upper face of the collar 5406 to be on the same axis as that of the collar 5406;
and an upper end 5410 provided in a projecting manner on an upper face of the polygonal
part 5408.
[0112] In this embodiment, the hole 1250 and the bearing member 54 constitute supporting
means recited in the claims of the present invention.
[0113] The shaft 5402 is formed in a cylindrical shape and has a tapered face 5403 formed
on the lower part of the outer circumferential face of the shaft 5402 so that its
radius gradually decreases as coming closer to the lower end.
[0114] The bearing hole 5404 is formed so as to be parallel to a center axis of the shaft
5402. The bearing hole 5404 is provided so that its center axis becomes eccentric
from the center axis of the shaft 5402.
[0115] As shown in Fig. 2, in this embodiment, the bearing hole 5404 is formed with four
flat faces provided so as to form 90 degrees therebetween. The four flat faces form
a square when viewed from a plane. Therefore, when the upper end of the main guide
shaft 38 is inserted into the bearing hole 5404, the four flat faces are theoretically
brought into line contact with the outer circumferential face of the main guide shaft
38. The bearing hole 5404 and the upper end of the main guide shaft 38 are located
on the same axis with high accuracy.
[0116] An upper end part 5410 is formed in an elongated shape when viewed on a plane. A
groove 5412 (an engagement groove for a tool, recited in the claims) for inserting
a tool such as a flat-blade screwdriver is formed on a top end face. Moreover, an
index part 5414 formed of concavity and convexity for enabling visual confirmation
of a rotational angle of the bearing member 54 is formed on the circumferential face.
[0117] Furthermore, inside the groove 5412, as shown in Figs. 3(A) and 3(B), a pin insertion
hole 5416 is formed so as to be connected to the bearing hole 5404.
[0118] Next, the hole 1250 formed in the wall of the first barrel divided body part 1202,
in which the bearing member 54 is provided, and the periphery thereof will be described.
[0119] As shown in Figs. 6 and 8, the hole 1250, into which the shaft 5402 is inserted,
is formed by an inner circumferential face 1252 formed to have a larger inner diameter
than the outer diameter of the shaft 5402 and a plurality of flat surfaces 1254 provided
at equal intervals in the circumferential direction of the inner circumferential face
and engageable with the outer circumferential face of the shaft 5402. By the engagement
of the plurality of flat surfaces 1254 with the outer circumferential face of the
shaft 5402, the center axis of the hole 1250 is intended to be adjusted to the center
axis of the shaft 5402 with high accuracy.
[0120] On the upper end of the inner circumferential face 1252, an annular placement face
1256, on which the collar 5406 is placed, is formed.
[0121] A concave groove 1257 is formed along the outer circumference of the placement face
1256. The concave groove 1257 is for guiding and discharging the excess of an adhesive
that fills adhesive filling concave portions 1258 to the notch 1280 as described below.
[0122] The adhesive filling concave portions 1258 are formed at the radially outer positions
of the placement face 1256, that is, on the outer circumference of the concave groove
1257 at intervals in the circumferential direction of the placement face 1256.
[0123] Minor diameter hole parts 1270 are formed in the hole 1250 and the placement face
1256 above the concave grooves 1257. Tilted hole parts 1272 are formed above the minor
diameter hole parts 1270. In this embodiment, a concave portion recited in the claims
of the present invention is formed by the minor diameter hole part 1270 and the tilted
hole part 1272.
[0124] The minor diameter hole part 1270 has a cylindrical face 1274 rising upward from
the outer circumference of the placement face 1256. The adhesive filling concave portions
1258 are provided on the cylindrical face 1274 at intervals in the circumferential
direction.
[0125] The tilted hole parts 1272 are formed by tilted faces 1276 provided at equal intervals
in the circumferential direction and coming closer to the center of an axis of the
minor diameter hole part 1270 as coming closer to the minor diameter hole part 1270
and curve faces 1278 provided between the tilted faces 1276.
[0126] A notch 1280 is provided in the tilted hole part 1272. The concave groove 1257 is
connected to the notch 1280.
[0127] As shown in Fig. 8, the upper end of the main guide shaft 38 is inserted into the
bearing hole 5404 of the bearing member 54 through a major diameter hole 1264 formed
in the first barrel divided body part 1202.
[0128] The lower end of the main guide shaft 38 is attached by a conventionally known structure,
for example, by insertion into a hole 1290 (Fig. 23) in the wall of the third barrel
divided body part 1204.
[0129] According to this embodiment, the optical axis of the movable zoom lens group 18
is adjusted as follows.
[0130] First, as the bearing members 54, the standard bearing member 54 having the center
axis of the bearing hole 5404 being adjusted to the center axis of the shaft 5402
as shown in Fig. 4(A), and the bearing members 54, each having the center axis of
the bearing hole 5404 being eccentric from the center axis of the shaft 5402, are
prepared. In this case, various types of the bearing members 54, each having a different
amount of eccentricity E between the center axis of the bearing hole 5404 and the
center axis of the shaft 5402, are prepared.
[0131] Next, as shown in Fig. 9, the lens barrel 10 is assembled using the standard bearing
member 54.
[0132] At this time, in the optical system 104, the components other than the movable zoom
lens group 18, that is, the objective lens 14, the movable focus lens group 20, the
first fixed lens group 22, the second fixed lens group 24 and the third fixed lens
group 26 are subjected to optical axis adjustment.
[0133] A conventionally known adjustment chart is provided in front of the objective lens
14. An image of the chart is formed on the imaging face of the image pickup element
150 through the optical system 14. The image of the chart is analyzed based on an
imaging signal output from the image pickup element 150 so as to measure partial defocusing
of the image of the chart, which is formed on the image pickup element 150. As an
evaluation value for measuring such partial defocusing, an MTF defocus curve is used.
Besides, various conventionally known evaluation values can be used.
[0134] Based on such an evaluation value, a tilt angle e of the movable zoom lens group
18 with respect to the optical axis 02 of the second optical axis part is calculated.
[0135] In order to adjust the optical axis 02 of the second optical path part and the optical
axis of the movable zoom lens group 18 to each other, it suffices that the main guide
shaft 38 is tilted at the same angle as the tilt angle e but in the opposite direction.
[0136] Therefore, the amount of eccentricity of the bearing member 54, which is required
to cancel out the tilt angle e, is determined in accordance with the tilt angle e.
[0137] Next, the bearing member 54 having the amount of eccentricity E corresponding to
the above-described eccentricity is selected.
[0138] Then, a pin is inserted into the pin insertion hole 5416 to remove the upper end
of the main guide shaft 30 from the bearing hole 5404 in the standard bearing member
54 while removing the shaft 5402 of the standard bearing member 54 from the hole 1250
in the wall of the first barrel divided body part 1202. Then, as shown in Fig. 10,
the shaft 5402 of the bearing member 54, which has the amount of eccentricity E, is
inserted into the hole 1250.
[0139] Subsequently, a tool such as a flat-blade screwdriver is inserted into the groove
5412 of the bearing member 54 to turn the bearing member 54. The tilt of the main
guide shaft 30 is adjusted to eliminate the partial defocusing indicated by the above-described
evaluation value while the index part 5414 is being visibly confirmed. As a result,
the optical axis 02 of the second optical path part becomes identical with the optical
axis of the movable zoom lens group 18.
[0140] In the case where the optical system 104 achieves the zoom operation by the movement
of the movable zoom lens group 18 in the optical axis direction, the tilt of the movable
zoom lens group 18 with respect to the optical axis 02 of the second optical path
part greatly affects the partial defocusing when the movable zoom lens group 18 is
located at a tele end. On the other hand, when the movable zoom lens group 18 is located
at a wide end, the effects of the tilt of the movable zoom lens group 18 with respect
to the optical axis 02 of the second optical path part on the partial defocusing can
be almost negligible.
[0141] Therefore, in this embodiment, the above-described adjustment operation is performed
by using the optical characteristic on the basis of the optical performance when the
movable zoom lens group 18 is at the tele end.
[0142] Therefore, the above-described adjustment operation is performed when the movable
zoom lens group 18 is located at the tele end.
[0143] Moreover, as shown in Fig. 10, by adjusting the tilt of the main guide shaft 38 with
the bearing member 54, the optical axis 02 of the second optical path part and the
optical axis of the movable zoom lens group 18 can be adjusted to each other at the
tele end. At the wide end, however the optical axis of the movable zoom lens group
18 is sometimes offset from the optical shaft 02 of the second optical path part.
However, when the movable zoom lens group 18 is located at the wide end, the offset
of the optical axis of the movable zoom lens group 18 from the optical axis 02 of
the second optical path part described above is almost negligible.
[0144] When the tilt angle e of the movable zoom lens group 18 with respect to the optical
axis 02 of the second optical path part is equal to or lower than the allowable value,
the standard bearing member 54 is adhered through an ultraviolet curable adhesive
without selecting the bearing member 54 having the amount of eccentricity E.
[0145] When the adjustment operation is completed as described above, the part between the
outer parts of the collar 5406, the polygonal part 5408 and the upper end part 5410
and the inner parts of the minor diameter hole parts 1270 and the tilted hole parts
1272 is filled with the ultraviolet curable adhesive to be cured with an ultraviolet
ray, thereby completing the assembly.
[0146] In this case, since the bearing member 54 has the polygonal part 5408, the polygonal
part 5408 is buried with the ultraviolet curable adhesive to effectively prevent the
bearing member 54 from rotating about the center axis of the hole 1250.
[0147] Next, the effects will be described.
[0148] The bearing member 54 for supporting the upper end of the main guide shaft 38 includes
the shaft 5402 inserted from the exterior of the first barrel divided body part 1202
into the hole 1250 so as to be removable therefrom and the bearing hole 5404 having
the center axis eccentric from the center axis of the shaft 5402. The upper end of
the main guide shaft 38 is supported by the bearing hole 5404. Therefore, by preparing
a plurality of types of the bearing members 54, each having a different amount of
eccentricity E between the center axis of the bearing hole 5404 and the center axis
of the shaft 5402, the easy adjustment of the optical axis of the movable zoom lens
group 18 is ensured.
[0149] Moreover, the bearing member 54 having the different amount of eccentricity E is
selected so as to be assembled from the outside of the first barrel divide body 1202,
thereby adjusting the optical axis of the movable zoom lens group 18. Therefore, a
complicated mechanism as a conventional one can be simplified. Moreover, a large space
is not needed. Accordingly, such a structure is advantageous in reduction of the number
of components, reduction of cost, and reduction of size of the lens barrel.
[0150] Although a digital still camera is exemplified as the image pickup apparatus in this
embodiment, it is apparent that the present invention is also applicable to image
pickup apparatuses such as a video camera and a television camera.
[0151] It should be understood by those skilled in the art that various modifications, combinations,
sub-combinations and alterations may occur depending on design requirements and other
factors insofar as they are within the scope of the appended claims or the equivalents
thereof.
[0152] The present invention contains subject mater related to Japanese Patent Application
JP2005-039019 filed in the Japanese Patent Office on February 16, 2005, the entire
contents of which being incorporated herein by reference.